Superconductivity emerging near quantum critical point of valence transition
Shinji Watanabe, Masatoshi Imada, Kazumasa Miyake
Abstract
The nature of the quantum valence transition is studied in the one-dimensional periodic Anderson model with Coulomb repulsion between f and conduction electrons by the density-matrix renormalization group method. It is found that the first-order valence transition emerges with the quantum critical point and the crossover from the Kondo to the mixed-valence states is strongly stabilized by quantum fluctuation and electron correlation. It is found that the superconducting correlation is developed in the Kondo regime near the sharp valence increase. The origin of the superconductivity is ascribed to the development of the coherent motion of electrons with enhanced valence fluctuation, which results in the enhancement of the charge velocity, but not of the charge compressibility. Statements on the valence transition in connection with Ce metal and Ce compounds are given.
Create a lesson
Related papers
Pseudospin Dynamics of Charge Order
Ping Tang
Holographic Representations of Topological Quantum Criticality: Emergent Symmetry Approach around the Bott Clock
Fan Yang, Fei Zhou
Symmetry-Enforced Topological Structures in Quantum Phase Diagrams
Linhao Li, Yuan Yao
Thermal Hall Signatures of Distinct Schwinger-Boson Flux Sectors on the Honeycomb Lattice
Daiki Sasamoto
Emergent Pair Density Wave and Incoherent Metallic State in a Strongly Correlated Doped System
Soham Maiti, Nandan Pakhira, A. Taraphder
Magnetic Field-Tunable Repulsive Exciton-Exciton Interaction in the van der Waals Antiferromagnet NiPS3
Kaiyang Huang, Jaena Park, Zhuo Yang et al.